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Overview

Uniprot IDP06730
Protein NameEukaryotic translation initiation factor 4E
Gene NameEIF4E
OrganismHomo sapiens

Kla Sites from experimental identification

Position Flanking peptide
206 SHADTATKSGSTTKN
54 FFKNDKSKTWQANLR

Function

Acts in the cytoplasm to initiate and regulate protein synthesis and is required in the nucleus for export of a subset of mRNAs from the nucleus to the cytoplasm which promotes processes such as RNA capping, processing and splicing (PubMed:11606200, PubMed:22578813, PubMed:22684010, PubMed:24335285, PubMed:29987188). Component of the protein complex eIF4F, which is involved in the recognition of the mRNA cap, ATP-dependent unwinding of 5'-terminal secondary structure and recruitment of mRNA to the ribosome (By similarity). This protein recognizes and binds the 7-methylguanosine (m7G)-containing mRNA cap during an early step in the initiation of protein synthesis and facilitates ribosome binding by inducing the unwinding of the mRNAs secondary structures (PubMed:16271312, PubMed:22578813). Together with EIF4G1, antagonizes the scanning promoted by EIF1-EIF4G1 and is required for TISU translation, a process where the TISU element recognition makes scanning unnecessary (PubMed:29987188). In addition to its role in translation initiation, also acts as a regulator of translation and stability in the cytoplasm (PubMed:24335285). Component of the CYFIP1-EIF4E-FMR1 complex which binds to the mRNA cap and mediates translational repression: in the complex, EIF4E mediates the binding to the mRNA cap (By similarity). Component of a multiprotein complex that sequesters and represses translation of proneurogenic factors during neurogenesis (By similarity). In P-bodies, component of a complex that mediates the storage of translationally inactive mRNAs in the cytoplasm and prevents their degradation (PubMed:24335285). May play an important role in spermatogenesis through translational regulation of stage-specific mRNAs during germ cell development (By similarity). As well as its roles in translation, also involved in mRNA nucleocytoplasmic transport (By similarity). Its role in mRNA export from the nucleus to the cytoplasm relies on its ability to bind the m7G cap of RNAs and on the presence of the 50-nucleotide EIF4E sensitivity element (4ESE) in the 3'UTR of sensitive transcripts (By similarity). Interaction with the 4ESE is mediated by LRPPRC which binds simultaneously to both EIF4E and the 4ESE, thereby acting as a platform for assembly for the RNA export complex (By similarity). EIF4E-dependent mRNA export is independent of ongoing protein or RNA synthesis and is also NFX1-independent but is XPO1-dependent with LRPPRC interacting with XPO1 to form an EIF4E-dependent mRNA export complex (By similarity). Alters the composition of the cytoplasmic face of the nuclear pore to promote RNA export by reducing RANBP2 expression, relocalizing nucleoporin NUP214 and increasing expression of RANBP1 and RNA export factors DDX19 and GLE1 (By similarity). Promotes the nuclear export of cyclin CCND1 mRNA (By similarity). Promotes the nuclear export of NOS2/iNOS mRNA (PubMed:23471078). Promotes the nuclear export of MDM2 mRNA (PubMed:22684010). Promotes the export of additional mRNAs, including others involved in the cell cycle (By similarity). In the nucleus, binds to capped splice factor-encoding mRNAs and stimulates their nuclear export to enhance splice factor production by increasing their cytoplasmic availability to the translation machinery (By similarity). May also regulate splicing through interaction with the spliceosome in an RNA and m7G cap-dependent manner (By similarity). Also binds to some pre-mRNAs and may play a role in their recruitment to the spliceosome (By similarity). Promotes steady-state capping of a subset of coding and non-coding RNAs by mediating nuclear export of capping machinery mRNAs including RNMT, RNGTT and RAMAC to enhance their translation (By similarity). Stimulates mRNA 3'-end processing by promoting the expression of several core cleavage complex factors required for mRNA cleavage and polyadenylation, and may also have a direct effect through its interaction with the CPSF3 cleavage enzyme (By similarity). Rescues cells from apoptosis by promoting activation of serine/threonine-protein kinase AKT1 through mRNA export of NBS1 which potentiates AKT1 phosphorylation and also through mRNA export of AKT1 effectors, allowing for increased production of these proteins (By similarity)

Protein Sequence

10 MATVEPETTP 20 TPNPPTTEEE 30 KTESNQEVAN 40 PEHYIKHPLQ 50 NRWALWFFKN 60 DKSKTWQANL 70 RLISKFDTVE 80 DFWALYNHIQ 90 LSSNLMPGCD 100 YSLFKDGIEP 110 MWEDEKNKRG 120 GRWLITLNKQ 130 QRRSDLDRFW 140 LETLLCLIGE 150 SFDDYSDDVC 160 GAVVNVRAKG 170 DKIAIWTTEC 180 ENREAVTHIG 190 RVYKERLGLP 200 PKIVIGYQSH 210 ADTATKSGST TKNRFVV

Gene Ontology

Classification GO ID Description
Cellular Component GO:0033391 chromatoid body
Cellular Component GO:0005737 cytoplasm
Cellular Component GO:0036464 cytoplasmic ribonucleoprotein granule
Cellular Component GO:0010494 cytoplasmic stress granule
Cellular Component GO:0005829 cytosol
Cellular Component GO:0016281 eukaryotic translation initiation factor 4F complex
Cellular Component GO:0060076 excitatory synapse
Cellular Component GO:0070062 extracellular exosome
Cellular Component GO:0098978 glutamatergic synapse
Cellular Component GO:0016607 nuclear speck
Cellular Component GO:0005654 nucleoplasm
Cellular Component GO:0005634 nucleus
Cellular Component GO:0000932 P-body
Cellular Component GO:0048471 perinuclear region of cytoplasm
Cellular Component GO:0098794 postsynapse
Cellular Component GO:0016442 RISC complex
Molecular Function GO:0140297 DNA-binding transcription factor binding
Molecular Function GO:0019899 enzyme binding
Molecular Function GO:0031370 eukaryotic initiation factor 4G binding
Molecular Function GO:0098808 mRNA cap binding
Molecular Function GO:0000340 RNA 7-methylguanosine cap binding
Molecular Function GO:0003723 RNA binding
Molecular Function GO:0000339 RNA cap binding
Molecular Function GO:0003743 translation initiation factor activity
Biological Process GO:0000082 G1/S transition of mitotic cell cycle
Biological Process GO:0006406 mRNA export from nucleus
Biological Process GO:0017148 negative regulation of translation
Biological Process GO:0045931 positive regulation of mitotic cell cycle
Biological Process GO:0006417 regulation of translation
Biological Process GO:0099578 regulation of translation at postsynapse, modulating synaptic transmission
Biological Process GO:0006413 translational initiation

Reference

[1] Yang Z, Yan C, Ma J, Peng P, Ren X et al.. Lactylome analysis suggests lactylation-dependent mechanisms of metabolic adaptation in hepatocellular carcinoma.. Nat Metab 5(1):61-79. 2023 Jan. PMID: 36593272.

[2] Guo X, Ren X, Yan C, Huang H. Quantitative Proteomics Reveals the Role of Lysine Lactylation in Lenalidomide-Resistance in Multiple Myeloma Cells.. ACS Chem Biol 20(7):1728-1738. 2025 Jul 18. PMID: 40590393.

[3] Wu Q, Li Z, Gong T, Zheng X, Zhou X et al.. Porphyromonas gingivalis infection induces lysine lactylation reprogramming in human umbilical vein endothelial cells.. Front Cell Infect Microbiol 16:1706727. 2026. PMID: 41696360.